Please use this identifier to cite or link to this item: https://scholarbank.nus.edu.sg/handle/10635/41820
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dc.titleS-AdaBoost and pattern detection in complex environment
dc.contributor.authorJiang, J.L.
dc.contributor.authorLoe, K.-F.
dc.date.accessioned2013-07-04T08:36:36Z
dc.date.available2013-07-04T08:36:36Z
dc.date.issued2003
dc.identifier.citationJiang, J.L.,Loe, K.-F. (2003). S-AdaBoost and pattern detection in complex environment. Proceedings of the IEEE Computer Society Conference on Computer Vision and Pattern Recognition 1 : I/413-I/418. ScholarBank@NUS Repository.
dc.identifier.issn10636919
dc.identifier.urihttp://scholarbank.nus.edu.sg/handle/10635/41820
dc.description.abstractS-AdaBoost is a new variant of AdaBoost and is more effective than the conventional AdaBoost in handling outliers in pattern detection and classification in real world complex environment. Utilizing the Divide and Conquer Principle, S-AdaBoost divides the input space into a few sub-spaces and uses dedicated classifiers to classify patterns in the sub-spaces. The final classification result is the combination of the outputs of the dedicated classifiers. S-AdaBoost system is made up of an AdaBoost divider, an AdaBoost classifier, a dedicated classifier for outliers, and a non-linear combiner. In addition to presenting face detection test results in a complex airport environment, we have also conducted experiments on a number of benchmark databases to test the algorithm. The experiment results clearly show S-AdaBoost's effectiveness in pattern detection and classification.
dc.sourceScopus
dc.typeConference Paper
dc.contributor.departmentCOMPUTER SCIENCE
dc.description.sourcetitleProceedings of the IEEE Computer Society Conference on Computer Vision and Pattern Recognition
dc.description.volume1
dc.description.pageI/413-I/418
dc.description.codenPIVRE
dc.identifier.isiutNOT_IN_WOS
Appears in Collections:Staff Publications

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